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首页> 外文期刊>Journal of Micromechanics and Microengineering >Evaporative cooling of sessile water microdrops measured with atomic force microscope cantilevers
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Evaporative cooling of sessile water microdrops measured with atomic force microscope cantilevers

机译:原子力显微镜悬臂测量的无水微滴的蒸发冷却

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We monitored the evaporation kinetics of drops from solid surfaces and the resulting cooling of the surfaces. To do this we deposited water drops with diameters smaller than 100 μm onto atomic force microscope (AFM) cantilevers. Due to the surface tension of the liquid, the Laplace pressure inside the drop, the change of the interfacial stress at the solid-liquid boundary and evaporative cooling, the cantilevers are deflected by typically some hundred nanometers. We used pure silicon and gold-coated silicon cantilevers in order to be able to separate and quantify the cooling effect from that due to the surface tension. We measured the bending of the cantilevers along their longitudinal axis versus time with an AFM-like setup, and monitored the contact angle and radius of the evaporating drops with video microscopy. We developed a FEM model for the bending of a cantilever as a result of surface forces and evaporative cooling. Experimental results are reproduced by FEM simulations.
机译:我们监测了固体表面液滴的蒸发动力学以及表面的冷却情况。为此,我们将直径小于100μm的水滴沉积到原子力显微镜(AFM)悬臂上。由于液体的表面张力,液滴内部的拉普拉斯压力,固液边界处的界面应力变化以及蒸发冷却,悬臂通常会偏转几百纳米。我们使用纯硅和镀金的硅悬臂梁,以便能够将冷却效果与表面张力引起的冷却效果分开并量化。我们使用类似AFM的装置测量悬臂沿其纵轴相对于时间的弯曲度,并通过视频显微镜监控蒸发液滴的接触角和半径。我们针对表面力和蒸发冷却导致的悬臂弯曲开发了FEM模型。实验结果通过有限元模拟再现。

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